Research Peptide

DSIP (Delta Sleep-Inducing Peptide)

Alternative Name: Delta Sleep, Hypnos     Sequence Length: 9 amino acid sequence 

Molecular Structure

2D molecular structure of the DSIP research peptide

Chemical Properties

Molecular Mass: 848.81 g/mol

Molecular Formula: C35H48N10O15

CAS Number: 62568-57-4

Sequence: Trp-Ala-Gly-Gly-Asp-Ala-Ser-Gly-Glu

Half-Life: approximately 7-15 minutes

Typical Purity: >98%

Administration Routes: subcutaneous, intramuscular, intranasal

Overview

Delta Sleep-Inducing Peptide (DSIP) is a synthetic form of a naturally occurring nonapeptide composed of nine amino acids. It was first isolated in 1977 from the cerebral venous blood of rabbits following electrical stimulation of the intralaminar thalamus, a brain region associated with sleep regulation. Early animal studies observed increased delta-wave activity after administration of purified peptide fractions, leading to the name “Delta Sleep-Inducing Peptide.”

 

Subsequent research has shown that DSIP exhibits a broader and more complex pattern of biological activity than originally proposed. Researchers have investigated its interactions with central nervous system signaling, neuroendocrine regulation, and stress-responsive molecular pathways. Published studies have examined DSIP in experimental models involving sleep architecture, circadian rhythm regulation, hypothalamic-pituitary-adrenal (HPA) axis signaling, cortisol regulation, endogenous opioid pathways, and alcohol- and opioid-withdrawal models. Additional investigations have explored its influence on pain-related signaling, autonomic nervous system activity, and neurotransmitter systems including gamma-aminobutyric acid (GABA) and adrenergic signaling.

 

Despite more than four decades of scientific investigation, DSIP’s primary molecular target has not been conclusively identified, and its biological mechanism remains incompletely understood. Much of the available evidence has been generated in preclinical research and experimental models, while published human studies remain limited. As a result, additional research is needed to further characterize its receptor interactions, molecular signaling pathways, and physiological functions.

 


Research Use Only: DSIP is intended exclusively for laboratory research and analytical purposes. It is an investigational research compound and has not been approved by the U.S. Food and Drug Administration (FDA).

Mechanism of Action

The molecular mechanism of DSIP has not been fully characterized. Unlike many peptide signaling molecules, no specific receptor has been conclusively identified for DSIP. Current evidence suggests that its biological activity may result from modulation of several interconnected signaling systems rather than activation of a single receptor. Additional research is needed to determine its primary molecular target.

 

Published studies have examined DSIP’s influence on gamma-aminobutyric acid (GABA) signaling, where it has been proposed to modulate GABAergic neurotransmission in experimental models. Researchers have also investigated interactions with adrenergic pathways, including possible effects on noradrenergic signaling and activity within the locus coeruleus. These observations suggest that DSIP may participate in regulation of neuronal communication, although the underlying mechanisms remain unproven.

 

Researchers have further examined DSIP’s interactions with endogenous opioid signaling. Experimental studies have proposed that the peptide may influence enkephalin and endorphin pathways, while additional investigations have explored its effects on hypothalamic-pituitary signaling. Published research has reported changes in the release of several pituitary hormones under specific experimental conditions, suggesting that DSIP may participate in neuroendocrine regulation through central nervous system pathways. These findings have not been consistent across all studies.

 

Additional experimental models have investigated whether DSIP interacts directly with neuronal membranes. Some studies have proposed that the peptide may influence membrane stability and calcium channel activity independently of classical receptor-mediated signaling. Because a primary receptor has not been identified, researchers have also suggested that DSIP may function as a regulatory peptide that indirectly influences multiple cellular pathways.


Overall, published research indicates that DSIP exhibits complex biological activity involving several neurotransmitter systems, neuroendocrine pathways, and intracellular signaling networks. However, the absence of a clearly identified receptor and the variability of experimental findings indicate that its mechanism of action remains incompletely understood. Additional research is needed to clarify its molecular targets, receptor interactions, and role in normal cellular signaling.

 


 

Research Use Only: DSIP is intended exclusively for laboratory research and analytical purposes. It is an investigational research compound and has not been approved by the U.S. Food and Drug Administration (FDA).

 

Research Papers

The influence of synthetic DSIP (deltasleepinducingpeptide) on disturbed human sleep.

Schneider-Helmert D, Schoenenberger GA.

Experientia. 1981;37(9):913-7. doi: 10.1007/BF01971753.PMID: 7028502

 

Effects of deltasleepinducing peptide on 24-hour sleep-wake behaviour in severe chronic insomnia.

Schneider-Helmert D.
Eur Neurol. 1987;27(2):120-9. doi: 10.1159/000116143.PMID: 3622582 
 

Delta sleepinducing peptide (DSIP): a still unresolved riddle.

Kovalzon VM, Strekalova TV.
J Neurochem. 2006 Apr;97(2):303-9. doi: 10.1111/j.1471-4159.2006.03693.x. Epub 2006 Mar 15.PMID: 16539679 

 

Interaction Matrix

Synergistic:

  • Melatonin: DSIP has been investigated for sleep architecture, while melatonin has been studied for circadian rhythm and sleep onset signaling

Compatible: 

  • Selank: Both have been investigated for their roles in molecular pathways associated with relaxation, although through different biological mechanisms.
  • Epithalon: DSIP has been studied in experimental models of sleep architecture, while Epithalon has been investigated for its role in circadian rhythm signaling.

Caution:

  • Benzodiazepines: Potential for enhanced central nervous system depressant effects

Frequently Asked Questions

  1. What is DSIP? Delta Sleep-Inducing Peptide (DSIP) is a synthetic version of a naturally occurring nonapeptide composed of nine amino acids. Since its discovery in 1977, DSIP has been investigated for its potential role in central nervous system signaling, neuroendocrine regulation, and circadian biology. Although extensively studied, its primary molecular target has not been conclusively identified.
  1. What does DSIP stand for? DSIP stands for Delta Sleep-Inducing Peptide. The name originated from early animal experiments in which increased delta-wave EEG activity was observed following administration of purified peptide fractions. Later research has suggested that DSIP exhibits a broader range of biological activity than its name implies.
  1. How does DSIP work? The mechanism of action of DSIP remains incompletely understood. Researchers have investigated its interactions with GABAergic neurotransmission, adrenergic signaling, endogenous opioid pathways, hypothalamic-pituitary-adrenal (HPA) axis regulation, and neuronal membrane signaling. No definitive receptor has been identified, and additional research is needed to fully characterize its molecular targets.
  1. What biological processes has DSIP been studied for? Published studies have investigated DSIP in experimental models involving sleep architecture, circadian rhythm regulation, stress-responsive molecular signaling, HPA axis activity, endogenous opioid signaling, neurotransmitter regulation, and neuroendocrine communication. Additional research has examined its biological activity in alcohol- and opioid-withdrawal models and pain-related molecular pathways.
  1. Is DSIP a naturally occurring peptide? Yes. DSIP-like peptides have been detected in human plasma, cerebrospinal fluid, and brain tissue. Endogenous concentrations are extremely low, and the precise physiological role of naturally occurring DSIP remains an active area of scientific investigation.
  1. How can researchers determine whether DSIP is producing biological activity? In experimental studies, investigators typically evaluate objective laboratory endpoints rather than subjective observations. Depending on the research model, these may include changes in electroencephalography (EEG), circadian rhythm measurements, stress hormone biomarkers, HPA axis signaling, neurotransmitter activity, gene expression, receptor signaling, or other molecular and cellular markers relevant to the study design. 
  1. Does DSIP bind to a specific receptor? No primary receptor has been conclusively identified. Unlike many peptide signaling molecules, DSIP has not been shown to consistently bind a single well-characterized receptor. Current evidence suggests its biological activity may result from indirect modulation of multiple signaling systems rather than activation of one specific receptor.
  1. Why is DSIP considered difficult to study? DSIP has a complex pharmacological profile and an incompletely understood mechanism of action. Published findings have varied between experimental models, and no definitive receptor has been identified. These factors have made it challenging to establish a single unifying mechanism for its biological activity.
  1. What makes DSIP different from other neuropeptides? Many neuropeptides produce their biological effects through well-defined receptors. In contrast, DSIP appears to influence several interconnected molecular signaling pathways without a clearly identified primary receptor. This has made it a unique subject within peptide and neurobiology research.
  1. Is additional research on DSIP needed? Yes. Although DSIP has been investigated for more than four decades, many aspects of its biology remain incompletely understood. Additional research is needed to identify its primary molecular targets, clarify its receptor interactions, and better characterize its role in cellular signaling, neuroendocrine regulation, and circadian biology.

 

Research Use Only: DSIP is intended exclusively for laboratory research and analytical purposes. It is an investigational research compound and has not been approved by the U.S. Food and Drug Administration (FDA).

Research Use Only

This information is provided for educational and scientific research purposes only. Products offered by Flatirons Research Co are intended strictly for laboratory and research use and are not intended for human or veterinary use, consumption, diagnosis, treatment, or prevention of disease. Nothing on this page constitutes medical advice, dosing guidance, or a recommendation for clinical use.